Effect of Transport Coefficients on Excitation of Flare-induced Standing Slow-mode Waves in Coronal Loops

被引:27
|
作者
Wang, Tongjiang [1 ,2 ]
Ofman, Leon [1 ,2 ,6 ]
Sun, Xudong [3 ]
Solanki, Sami K. [4 ,5 ]
Davila, Joseph M. [2 ]
机构
[1] Catholic Univ Amer, Dept Phys, 620 Michigan Ave NE, Washington, DC 20064 USA
[2] NASA, Goddard Space Flight Ctr, Code 671, Greenbelt, MD 20770 USA
[3] Univ Hawaii Manoa, Inst Astron, Pukalani, HI 96768 USA
[4] Max Planck Inst Sonnensyst Forsch, Justus von Liebig Weg 3, D-37077 Gottingen, Germany
[5] Kyung Hee Univ, Sch Space Res, Yongin 446701, Gyeonggi Do, South Korea
[6] Tel Aviv Univ, Tel Aviv, Israel
来源
ASTROPHYSICAL JOURNAL | 2018年 / 860卷 / 02期
基金
新加坡国家研究基金会;
关键词
Sun: corona; Sun: UV radiation; Sun: flares; Sun: oscillations; waves; DOPPLER-SHIFT OSCILLATIONS; DYNAMICS-OBSERVATORY SDO; SOLAR-FLARES; EMISSION MEASURE; THERMAL CONDUCTION; MAGNETIC-FIELDS; STELLAR FLARES; ACTIVE-REGION; SUMER; TEMPERATURE;
D O I
10.3847/1538-4357/aac38a
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Standing slow-mode waves have been recently observed in flaring loops by the Atmospheric Imaging Assembly of the Solar Dynamics Observatory. By means of the coronal seismology technique, transport coefficients in hot (similar to 10 MK) plasma were determined by Wang et al., revealing that thermal conductivity is nearly suppressed and compressive viscosity is enhanced by more than an order of magnitude. In this study, we use 1D nonlinear MHD simulations to validate the predicted results from the linear theory and investigate the standing slow-mode wave excitation mechanism. We first explore the wave trigger based on the magnetic field extrapolation and flare emission features. Using a flow pulse driven at one footpoint, we simulate the wave excitation in two types of loop models: Model 1 with the classical transport coefficients and Model 2 with the seismology-determined transport coefficients. We find that Model 2 can form the standing wave pattern (within about one period) from initial propagating disturbances much faster than Model 1, in better agreement with the observations. Simulations of the harmonic waves and the Fourier decomposition analysis show that the scaling law between damping time (tau) and wave period (P) follows tau proportional to P-2 in Model 2, while tau proportional to P in Model 1. This indicates that the largely enhanced viscosity efficiently increases the dissipation of higher harmonic components, favoring the quick formation of the fundamental standing mode. Our study suggests that observational constraints on the transport coefficients are important in understanding both the wave excitation and damping mechanisms.
引用
收藏
页数:19
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